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Li2CO3 = CO2 + Li2O

Input interpretation

Li_2CO_3 lithium carbonate ⟶ CO_2 carbon dioxide + Li_2O lithium oxide
Li_2CO_3 lithium carbonate ⟶ CO_2 carbon dioxide + Li_2O lithium oxide

Balanced equation

Balance the chemical equation algebraically: Li_2CO_3 ⟶ CO_2 + Li_2O Add stoichiometric coefficients, c_i, to the reactants and products: c_1 Li_2CO_3 ⟶ c_2 CO_2 + c_3 Li_2O Set the number of atoms in the reactants equal to the number of atoms in the products for C, Li and O: C: | c_1 = c_2 Li: | 2 c_1 = 2 c_3 O: | 3 c_1 = 2 c_2 + c_3 Since the coefficients are relative quantities and underdetermined, choose a coefficient to set arbitrarily. To keep the coefficients small, the arbitrary value is ordinarily one. For instance, set c_1 = 1 and solve the system of equations for the remaining coefficients: c_1 = 1 c_2 = 1 c_3 = 1 Substitute the coefficients into the chemical reaction to obtain the balanced equation: Answer: |   | Li_2CO_3 ⟶ CO_2 + Li_2O
Balance the chemical equation algebraically: Li_2CO_3 ⟶ CO_2 + Li_2O Add stoichiometric coefficients, c_i, to the reactants and products: c_1 Li_2CO_3 ⟶ c_2 CO_2 + c_3 Li_2O Set the number of atoms in the reactants equal to the number of atoms in the products for C, Li and O: C: | c_1 = c_2 Li: | 2 c_1 = 2 c_3 O: | 3 c_1 = 2 c_2 + c_3 Since the coefficients are relative quantities and underdetermined, choose a coefficient to set arbitrarily. To keep the coefficients small, the arbitrary value is ordinarily one. For instance, set c_1 = 1 and solve the system of equations for the remaining coefficients: c_1 = 1 c_2 = 1 c_3 = 1 Substitute the coefficients into the chemical reaction to obtain the balanced equation: Answer: | | Li_2CO_3 ⟶ CO_2 + Li_2O

Structures

 ⟶ +
⟶ +

Names

lithium carbonate ⟶ carbon dioxide + lithium oxide
lithium carbonate ⟶ carbon dioxide + lithium oxide

Equilibrium constant

Construct the equilibrium constant, K, expression for: Li_2CO_3 ⟶ CO_2 + Li_2O Plan: • Balance the chemical equation. • Determine the stoichiometric numbers. • Assemble the activity expression for each chemical species. • Use the activity expressions to build the equilibrium constant expression. Write the balanced chemical equation: Li_2CO_3 ⟶ CO_2 + Li_2O Assign stoichiometric numbers, ν_i, using the stoichiometric coefficients, c_i, from the balanced chemical equation in the following manner: ν_i = -c_i for reactants and ν_i = c_i for products: chemical species | c_i | ν_i Li_2CO_3 | 1 | -1 CO_2 | 1 | 1 Li_2O | 1 | 1 Assemble the activity expressions accounting for the state of matter and ν_i: chemical species | c_i | ν_i | activity expression Li_2CO_3 | 1 | -1 | ([Li2CO3])^(-1) CO_2 | 1 | 1 | [CO2] Li_2O | 1 | 1 | [Li2O] The equilibrium constant symbol in the concentration basis is: K_c Mulitply the activity expressions to arrive at the K_c expression: Answer: |   | K_c = ([Li2CO3])^(-1) [CO2] [Li2O] = ([CO2] [Li2O])/([Li2CO3])
Construct the equilibrium constant, K, expression for: Li_2CO_3 ⟶ CO_2 + Li_2O Plan: • Balance the chemical equation. • Determine the stoichiometric numbers. • Assemble the activity expression for each chemical species. • Use the activity expressions to build the equilibrium constant expression. Write the balanced chemical equation: Li_2CO_3 ⟶ CO_2 + Li_2O Assign stoichiometric numbers, ν_i, using the stoichiometric coefficients, c_i, from the balanced chemical equation in the following manner: ν_i = -c_i for reactants and ν_i = c_i for products: chemical species | c_i | ν_i Li_2CO_3 | 1 | -1 CO_2 | 1 | 1 Li_2O | 1 | 1 Assemble the activity expressions accounting for the state of matter and ν_i: chemical species | c_i | ν_i | activity expression Li_2CO_3 | 1 | -1 | ([Li2CO3])^(-1) CO_2 | 1 | 1 | [CO2] Li_2O | 1 | 1 | [Li2O] The equilibrium constant symbol in the concentration basis is: K_c Mulitply the activity expressions to arrive at the K_c expression: Answer: | | K_c = ([Li2CO3])^(-1) [CO2] [Li2O] = ([CO2] [Li2O])/([Li2CO3])

Rate of reaction

Construct the rate of reaction expression for: Li_2CO_3 ⟶ CO_2 + Li_2O Plan: • Balance the chemical equation. • Determine the stoichiometric numbers. • Assemble the rate term for each chemical species. • Write the rate of reaction expression. Write the balanced chemical equation: Li_2CO_3 ⟶ CO_2 + Li_2O Assign stoichiometric numbers, ν_i, using the stoichiometric coefficients, c_i, from the balanced chemical equation in the following manner: ν_i = -c_i for reactants and ν_i = c_i for products: chemical species | c_i | ν_i Li_2CO_3 | 1 | -1 CO_2 | 1 | 1 Li_2O | 1 | 1 The rate term for each chemical species, B_i, is 1/ν_i(Δ[B_i])/(Δt) where [B_i] is the amount concentration and t is time: chemical species | c_i | ν_i | rate term Li_2CO_3 | 1 | -1 | -(Δ[Li2CO3])/(Δt) CO_2 | 1 | 1 | (Δ[CO2])/(Δt) Li_2O | 1 | 1 | (Δ[Li2O])/(Δt) (for infinitesimal rate of change, replace Δ with d) Set the rate terms equal to each other to arrive at the rate expression: Answer: |   | rate = -(Δ[Li2CO3])/(Δt) = (Δ[CO2])/(Δt) = (Δ[Li2O])/(Δt) (assuming constant volume and no accumulation of intermediates or side products)
Construct the rate of reaction expression for: Li_2CO_3 ⟶ CO_2 + Li_2O Plan: • Balance the chemical equation. • Determine the stoichiometric numbers. • Assemble the rate term for each chemical species. • Write the rate of reaction expression. Write the balanced chemical equation: Li_2CO_3 ⟶ CO_2 + Li_2O Assign stoichiometric numbers, ν_i, using the stoichiometric coefficients, c_i, from the balanced chemical equation in the following manner: ν_i = -c_i for reactants and ν_i = c_i for products: chemical species | c_i | ν_i Li_2CO_3 | 1 | -1 CO_2 | 1 | 1 Li_2O | 1 | 1 The rate term for each chemical species, B_i, is 1/ν_i(Δ[B_i])/(Δt) where [B_i] is the amount concentration and t is time: chemical species | c_i | ν_i | rate term Li_2CO_3 | 1 | -1 | -(Δ[Li2CO3])/(Δt) CO_2 | 1 | 1 | (Δ[CO2])/(Δt) Li_2O | 1 | 1 | (Δ[Li2O])/(Δt) (for infinitesimal rate of change, replace Δ with d) Set the rate terms equal to each other to arrive at the rate expression: Answer: | | rate = -(Δ[Li2CO3])/(Δt) = (Δ[CO2])/(Δt) = (Δ[Li2O])/(Δt) (assuming constant volume and no accumulation of intermediates or side products)

Chemical names and formulas

 | lithium carbonate | carbon dioxide | lithium oxide formula | Li_2CO_3 | CO_2 | Li_2O Hill formula | CLi_2O_3 | CO_2 | Li_2O name | lithium carbonate | carbon dioxide | lithium oxide IUPAC name | dilithium carbonate | carbon dioxide | dilithium oxygen(-2) anion
| lithium carbonate | carbon dioxide | lithium oxide formula | Li_2CO_3 | CO_2 | Li_2O Hill formula | CLi_2O_3 | CO_2 | Li_2O name | lithium carbonate | carbon dioxide | lithium oxide IUPAC name | dilithium carbonate | carbon dioxide | dilithium oxygen(-2) anion

Substance properties

 | lithium carbonate | carbon dioxide | lithium oxide molar mass | 73.9 g/mol | 44.009 g/mol | 29.9 g/mol phase | solid (at STP) | gas (at STP) |  melting point | 618 °C | -56.56 °C (at triple point) |  boiling point | | -78.5 °C (at sublimation point) |  density | 2.11 g/cm^3 | 0.00184212 g/cm^3 (at 20 °C) | 2.013 g/cm^3 dynamic viscosity | | 1.491×10^-5 Pa s (at 25 °C) |  odor | | odorless |
| lithium carbonate | carbon dioxide | lithium oxide molar mass | 73.9 g/mol | 44.009 g/mol | 29.9 g/mol phase | solid (at STP) | gas (at STP) | melting point | 618 °C | -56.56 °C (at triple point) | boiling point | | -78.5 °C (at sublimation point) | density | 2.11 g/cm^3 | 0.00184212 g/cm^3 (at 20 °C) | 2.013 g/cm^3 dynamic viscosity | | 1.491×10^-5 Pa s (at 25 °C) | odor | | odorless |

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